Research status on the effect of energy density on the forming microstructure and properties of nickel-based superalloys for laser additive manufacturing

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Abstract

Nickel-based superalloys have excellent high-temperature mechanical properties, corrosion resistance and oxidation resistance, and strong machinability. It is widely used in aerospace, submarine and shipbuilding, petrochemical, electronic industry and other industries. However, there are still challenges in the popularization and application of nickel-based superalloys for alloy components with complex structures and extremely harsh working conditions. In this paper, the research status of the influence of energy density on the microstructure and properties of laser additive fabrication of nickel-based superalloys at home and abroad is reviewed. The influence of energy density on the microstructure evolution behavior and mechanical properties improvement effect of laser additive manufacturing nickel-based superalloys is summarized. The mechanism of energy density was discussed from the perspectives of microstructure evolution and macroscopic performance change. Based on the individual effects and synergistic effects of each process parameter, the influence of laser energy density on dendrite growth, phase precipitation characteristics, element distribution and porosity defect control effect of nickel-based superalloy was expounded, as well as the influence mechanism on microhardness, wear resistance and residual stress. Finally, the energy density optimization and development prospect of laser additive fabrication of nickel-based superalloys are prospected.

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Linjie, L., Quanwei, C., Zhicheng, L., Haoran, S., Qiang, L., & Wanli, G. (2024). Research status on the effect of energy density on the forming microstructure and properties of nickel-based superalloys for laser additive manufacturing. In Journal of Physics: Conference Series (Vol. 2845). Institute of Physics. https://doi.org/10.1088/1742-6596/2845/1/012021

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